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1.
The electron impact mass spectra of eight polynuclear beryllium complexes Be4O(RCO2)6 (R?H, CH3, C2H5) and Be4O(RCO2)5OR′ (R?CH3, R′?H, CH3, C2H5, C3H7; R?C2H5, R′?C2H5) are reported. The major fragmentations involve the elimination of (RCO)2O (RCOOR′) or Be(RCO2)2 (Be(RCO2)OR′) from the ions [M? L]+ and of {(R? H)CO}, (R′? H), H2O and BeO from the lighter ions. The fragmentation patterns are practically independent of the organic groups present and can be rationalized by stereochemical considerations.  相似文献   

2.
Report of the preparation, chemical properties, and the infrared-to-ultra-violet spectra of the perchlorates and bromides of the two complex cations [Co2{ac(OH)2}(NH3)6]3+ (where ac = HCO2, CH3CO2; CH2ClCO2, CHCl2CO2, CCl3CO2, CHFCO2, CHF2CO2 und CF3CO2) and [Co2{ac2(OH)}(NH3)6]3+ (where ac = CH2ClCO2, CHClCO2 und CCl3CO2). The perchlorate, nitrate, bromide and dithionate salts of the tetranuclear complex [Co4{C2O4(OH)4}(NH3)12]6+ are described. The complex reported by WERNER as [Co2{OH}2(CH3CO2)H2O(NH3)6]Br3 actually has the formula [Co2{CH3CO2(OH)2}(NH3)6]Br3 · CH3COOH.  相似文献   

3.
dh-μ-Carboxilato-e-μ-hydroxo-f-μ-oxo-bis[trichloroantimonies(V)] Structure and Spectroscopic Investigations The title compounds can be prepared by reaction of SbCl5 · H2O and RCOOH (R ? CF3, CCl3, CHCl2, CH2Cl, CH3, CH3CH2, (CH3)2CH, H) or by reaction of H5O2+SbCl6? and RCO2SbCl4 in good yields. 1H-NMR investigations proove that there is a rapid exchange between the components in the reaction mixture. The vibrational spectra are discussed in view of the CO2 vibrations and hydrogen bonding. The crystal and molecular structure of dh-μ-Trichloroacetato-e-μ-hydroxo-f-μ-oxo-bis[trichloroantimony(V)] is determined by X-ray analysis.  相似文献   

4.
The electron impact mass spectra of Be4O(CHal3CO2)6 (Hal = F, Cl) are reported. The compounds give two series of fragment ions, [Be4OLx]+ and [Be4OL+]+, where L is an intact ligand or its fragmentation product. The major ligand dissociation path is the elimination of CHal2CO2 with halogen transfer to the metal. Other processes of importance are the loss of acid anhydride fragments, CF2 with fluorine shift to the carboxyl group carbon atom, and halogens. Trinuclear ions also undergo decarboxylation, e.g. to give [Be2O(CHal3CO2)2(CHal3)]+. Both spectra contain comparatively intense peaks of double-charged ions. The fragmentation patterns are rationalized by stereochemical considerations.  相似文献   

5.
d, h-μ-Benzylalkoxophosphonato-e-μ-alkoxo-f-μ-oxo-bis[trichloroantimony(V)] Compounds The binuclear antimony(V) complexes Cl3Sb(O)[R3(R1O)PO2](OR2)SbCl3 1 – 6 with R1 = R2 = CH3, C2H5 and R3 = C6H5CH2, (CH3)3C6H2CH2 in solution slowly exchanges the R2 groups between the oxygen atoms of the Sb2O2 ring. The SbOPOSb ringsystem makes rapid pseudorotation. The isomeres are detected by nmr spectroscopy. 1 (R1 = R2 = CH3) crystallizes in the orthorhombic space group Pnma with a = 1247.0, b = 1324.1, c = 1207.9 pm and Z = 4. 2 (R1 = CH3, R2 = C2H5) and 5 (R1 = R2 = CH3, R3 = (CH3)3 · C6H2CH2) crystallizes triclinic in the space group P-1 with a = 984.1, b = 1026.7, c = 1079.9 pm, α = 87.93, β = 75.70, γ = 87.62° and Z = 2 and a = 1164.6, b = 1296.9, c = 1712.9 pm, α = 109.9, β = 96.3, γ = 100.2° and Z = 4 resp., with two crystallographically independent molecules in the asymmetric unit.  相似文献   

6.
Molecular and Crystal Structures of (CO)4W(μ-S-t-C4H9)2W(CO)4, η7-C7H7W(μ-SC6H4CH3)3W(CO)3 and η7-C7H7W(μ-S-n-C4H9)3W(CO)(μ-S-n-C4H9)2W(CO)4 The molecular structures of the two binuclear complexes (CO)4W(μ-S-t-C4H9)2W(CO)4 and η7-C7H7W(μ-SC6H4CH3)3W(CO)3 and of the tungsten cluster η7-C7H7W(μ-S-n-C4H9)3W(CO)-(μ-S-n-C4H9)2W(CO)4 respectively are described. In the nonlinear trinuclear cluster the central tungsten atom is connected to the two tungsten atoms by two and three μ-S-n-C4H9 bridges respectively and additionally by one W? W bond each. The coordination sphere of the W atoms is completed by a η7-C7H7 ring and four CO groups respectively; the central tungsten carries an additional CO group.  相似文献   

7.
Zinc hydroxy acetate, Zn5(OH)8(CH3CO2)2·4H2O, has been prepared by the precipitation method. It has been demonstrated by FTIR analysis that, contrary to previous reports, the interaction of the acetate anion with the matrix cation is ionic. TG analysis, mass spectral analysis of the evolved gases, and in situ variable temperature PXRD and FTIR analysis have shown that decomposition of the material to ZnO involves the formation of Zn5(OH)8(CH3CO2), Zn3(OH)4(CH3CO2)2 and anhydrous zinc acetate (Zn(CH3CO2)2) as some of the acetate-containing intermediate solid products. The acetate anion is finally lost, at temperatures below 400 °C, as acetic anhydride, (CH3CO)2O.  相似文献   

8.
Metal Complexes of Biologically Important Ligands, CLVII [1] Halfsandwich Complexes of Isocyanoacetylamino acid esters and of Isocyanoacetyldi‐ and tripeptide esters (?Isocyanopeptides”?) N‐Isocyanoacetyl‐amino acid esters CNCH2C(O) NHCH(R)CO2CH3 (R = CH3, CH(CH3)2, CH2CH(CH3)2, CH2C6H5) and N‐isocyanoacetyl‐di‐ and tripeptide esters CNCH2C(O)NHCH(R1)C(O)NHCH(R2)CO2C2H5 and CNCH2C(O)NHCH(R1)C(O)NHCH (R2)C(O)NHCH(R3)CO2CH3 (R1 = R2 = R3 = CH2C6H5, R2 = H, CH2C6H5) are available by condensation of potassium isocyanoacetate with amino acid esters or peptide esters. These isocyanides form with chloro‐bridged complexes [(arene)M(Cl)(μ‐Cl)]2 (arene = Cp*, p‐cymene, M = Ir, Rh, Ru) in the presence of Ag[BF4] or Ag[CF3SO3] the cationic halfsandwich complexes [(arene)M(isocyanide)3]+X? (X = BF4, CF3SO3).  相似文献   

9.
The title compound, [Cu3(C3H5O2)6(C6H7NO)4]n, is composed of polymeric chains formed by alternating centrosymmetric Cu2(μ‐CH3CH2CO2)4 and Cu(C3H5O2)2(C6H7NO)2 units. These elemental units are linked by two bridging 3‐pyridylmethanol (3PM) ligands. The Cu2(μ‐CH3CH2CO2)4 group presents a centrosymmetric tetra­bridged structure with four synsyn bridging propionate ligands to which two 3PM mol­ecules are bonded (through N), occupying the apical positions of each square‐pyramidal polyhedron around the CuII ions. The remaining mononuclear group is centred around a third CuII ion, which lies on a symmetry centre and is bound to two monodentate propionate groups (through O), two monodentate 3PM mol­ecules (through N) and two bridging 3PM mol­ecules (through O), thus completing a square‐bipyramidal CuO2N2O2 coordination.  相似文献   

10.
The oxidative degradation of [(HOCH2CH2)3PCH2OH]+Cl? ( 1 ) with Cl2 yields, dependent on the pH used, either (HOCH2CH2)3P?O ( 2 ) or (HOCH2CH2)2 (HOCH2) P?O ( 3 ). Chlorination of 2 and 3 with PCl5 produces the corresponding chlorides (ClCH2CH2)3P?O ( 4 ) and (ClCH2CH2)2 (ClCH2)P?O ( 5 ), respectively. Acetylation of 2 and 3 gives the corresponding esters (CH3CO2CH2CH2)3P?O ( 6 ), and (CH3CO2CH2CH2)2 (CH3CO2CH2)P?O ( 7 ), respectively. Reaction of 7 with HBr results in the formation of (BrCH2CH2)2 (BrCH2)P?O. Nucleophilic substitution of the chlorine atoms in 4 and 5 with alkoxide or mercaptide gives e.g., 9 , 10 , 11 or 11a , while treatment with tertiary amines yields the vinyl compounds (CH2?CH)3P?O ( 12 ) and (CH2?CH)2 (CH2Cl)P?O ( 13 ). 4 and 5 also undergo an Arbuzov type reaction with tertiary phosphites to give 14 and 15 , respectively, which on hydrolysis with conc. HCl give the corresponding acids 16 and 17 , respectively.  相似文献   

11.
Reactions of one or two equiv. of cyclohexyl isocyanide in THF at room temperature with Mo?Mo triply bonded complexes [Mo(CO)2(η5‐C5H4R)]2 (R=COCH3, CO2CH3) gave the isocyanide coordinated Mo? Mo singly bonded complexes with functionally substituted cyclopentadienyl ligands, [Mo(CO)2(η5‐C5H4R)]2(μη2‐CNC6H11) ( 1a , R=COCH3; 1b , R=CO2CH3) and [Mo(CO)2(η5‐C5H4R)(CNC6H11)]2 ( 2a , R=COCH3; 2b , R=CO2CH3), respectively. Complexes 1a , 1b and 2a , 2b could be more conveniently prepared by thermal decarbonylation of Mo? Mo singly bonded complexes [Mo(CO)3(η5‐C5H4R)]2 (R=COCH3, CO2CH3) in toluene at reflux, followed by treatment of the resulting Mo?Mo triply bonded complexes [Mo(CO)2(η5‐C5H4R)]2 (R=COCH3, CO2CH3) in situ with cyclohexyl isocyanide. While 1a , 1b and 2a , 2b were characterized by elemental analysis and spectroscopy, 1b was further characterized by X‐ray crystallography.  相似文献   

12.
The title compound, {[Zn4(C8H4O4)3(OH)2(C12H6N2O2)2]·2H2O}n, has been prepared hydrothermally by the reaction of Zn(NO3)2·6H2O with benzene‐1,4‐dicarboxylic acid (H2bdc) and 1,10‐phenanthroline‐5,6‐dione (pdon) in H2O. In the crystal structure, a tetranuclear Zn4(OH)2 fragment is located on a crystallographic inversion centre which relates two subunits, each containing a [ZnN2O4] octahedron and a [ZnO4] tetrahedron bridged by a μ3‐OH group. The pdon ligand chelates to zinc through its two N atoms to form part of the [ZnN2O4] octahedron. The two crystallographically independent bdc2− ligands are fully deprotonated and adopt μ3‐κOO′:κO′′ and μ4‐κOO′:κO′′:κO′′′ coordination modes, bridging three or four ZnII cations, respectively, from two Zn4(OH)2 units. The Zn4(OH)2 fragment connects six neighbouring tetranuclear units through four μ3‐bdc2− and two μ4‐bdc2− ligands, forming a three‐dimensional framework with uninodal 6‐connected α‐Po topology, in which the tetranuclear Zn4(OH)2 units are considered as 6‐connected nodes and the bdc2− ligands act as linkers. The uncoordinated water molecules are located on opposite sides of the Zn4(OH)2 unit and are connected to it through hydrogen‐bonding interactions involving hydroxide and carboxylate groups. The structure is further stabilized by extensive π–π interactions between the pdon and μ4‐bdc2− ligands.  相似文献   

13.
Coordinatively Unsaturated Diiron Complexes: Synthesis and Crystal Structures of [Fe2(CO)4(μ‐H)(μ‐PtBu2)(μ‐Ph2PCH2PPh2)] and [Fe2(CO)4(μ‐CH2)(μ‐H)(μ‐PtBu2)(μ‐Ph2PCH2PPh2)] [Fe2(μ‐CO)(CO)6(μ‐H)(μ‐PtBu2)] ( 1 ) reacts spontaneously with dppm (dppm = Ph2PCH2PPh2) to give [Fe2(μ‐CO)(CO)4(μ‐H)(μ‐PtBu2)(μ‐dppm)] ( 2 c ). By thermolysis or photolysis, 2 c loses very easily one carbonyl ligand and yields the corresponding electronically and coordinatively unsaturated complex [Fe2(CO)4(μ‐H)(μ‐PtBu2)(μ‐dppm)] ( 3 ). 3 exhibits a Fe–Fe double bond which could be confirmed by the addition of methylene to the corresponding dimetallacyclopropane [Fe2(CO)4(μ‐CH2)(μ‐H)(μ‐PtBu2)(μ‐dppm)] ( 4 ). The reaction of 1 with dppe (Ph2PC2H4PPh2) affords [Fe2(μ‐CO)(CO)4(μ‐H)(μ‐PtBu2)(μ‐dppe)] ( 5 ). In contrast to the thermolysis of 2 c , yielding 3 , the heating of 5 in toluene leads rapidly to complete decomposition. The reaction of 1 with PPh3 yields [Fe2(CO)6(H)(μ‐PtBu2)(PPh3)] ( 6 a ), while with tBu2PH the compound [Fe2(μ‐CO)(CO)5(μ‐H)(μ‐PtBu2)(tBu2PH)] ( 6 b ) is formed. The thermolysis of 6 b affords [Fe2(CO)5(μ‐PtBu2)2] and the degradation products [Fe(CO)3(tBu2PH)2] and [Fe(CO)4(tBu2PH)]. The molecular structures of 3 , 4 and 6 b were determined by X‐ray crystal structure analyses.  相似文献   

14.
Inhaltsübersicht. (Ph2PCH2CH2)2N-P(O)N(H)CH2CH2CH2O ( 2 ) bildet mit cis-M(CO)4(C7H8) bzw. fac-M(CO)3(CH3CN)3 (M = Cr, Mo, W; C7H8 = Norbornadien) die Chelat-komplexe cis-M(CO)4(PPh2CH2CH2)2N-P(O)N(H)CH2CH2CH2O ( 3a–c ) bzw. fac-M(CO)3(PPh2CH2CH2)2N–P(O)N(H)CH2CH2CH2O ( 4a–c ). 3a kristallisiert mit einem Mol Methanol aus, während 4a–c jeweils ein halbes Mol THF als Solvat enthalten. Alle Verbindungen wurden, soweit möglich, durch IR-, Raman-, 1H-NMR-, 31P-NMR-, 13C-NMR- und Massenspektren charakterisiert. Chemistry of Polyfunctional Molecules. 103. Chromium, Molybdenum, and Tungsten Tetra- and Tricarbonyl Complexes of a Diphenylphosphine-substituted Cyclophosphamide Abstract. (Ph2PCH2CH2)2N–P(O)N(H)CH2CH2CH2O (2) forms with cis-M(CO)4(C7H8) or fac-M(CO)3(CH3CN)3 (M = Cr, Mo, W; C7H8 = norbornadiene) the chelate complexes cis-M(CO)4(PPh2CH2CH2)2N–P(O)N(H)CH2CH2CH3O ( 3a–c ) or fac-M(CO)3(PPh2CH2CH2)2N–P(O)N(H)CH2CH2CH2O ( 4a–c ). 3a crystallizes with one mole of methanol whereas 4a–c contain 1/2 mole of THP as solvate. All compounds were, as far as possible, characterized by their IR, Raman, 1H NMR, 31P NMR, 13C NMR, and mass spectra.  相似文献   

15.
Synthesis and Dynamic Behaviour of [Rh2(μ-H)3H2(PiPr3)4]+. Contributions to the Reactivity of the Tetrahydridodirhodium Complex [Rh2H4(PiPr3)4] An improved synthesis of [Rh2H4(PiPr3)4] ( 2 ) from [Rh(η3-C3H5)(PiPr3)2] ( 1 ) or [Rh(η3-CH2C6H5)(PiPr3)2] ( 3 ) and H2 is described. Compound 2 reacts with CO or CH3OH to give trans-[RhH(CO)(PiPr3)2] ( 4 ) and with ethene/acetone to yield a mixture of 4 and trans-[RhCH3(CO)(PiPr3)2] ( 5 ). The carbonyl(methyl) complex 5 has also been prepared from trans-[RhCl(CO)(PiPr3)2] ( 6 ) and CH3MgI. Whereas the reaction of 2 with two parts of CF3CO2H leads to [RhH22-O2CCF3) · (PiPr3)2] ( 8 ), treatment of 2 with one equivalent of CF3CO2H in presence of NH4PF6 gives the dinuclear compound [Rh2H5(PiPr3)4]PF6 ( 9a ). The reactions of 2 with HBF4 and [NO]BF4 afford the complexes [Rh2H5(PiPr3)4]BF4 ( 9b ) and trans-[RhF(NO)(PiPr3)2]BF4 ( 11 ), respectively. In solution, the cation [Rh2(μ-H)3H2(PiPr3)4]+ of the compounds 9a and 9b undergoes an intramolecular rearrangement in which the bridging hydrido and the phosphane ligands are involved.  相似文献   

16.
The Syntheses and Vibrational Spectra of the Homoleptic Metal Acetonitrile Cations [Au(NCCH3)2]+, [Pd(NCCH3)4]2+, [Pt(NCCH3)4]2+, and the Adduct CH3CN · SbF5. The Crystal and Molecular Structures of [M(NCCH3)4][SbF6]2 · CH3CN, M = Pd or Pt Solvolyses of the homoleptic metal carbonyl salts [M(CO)4][Sb2F11]2, M = Pd or Pt, in acetonitrile leads at 50 °C both to complete ligand exchange for the cations as well as to a conversion of the di-octahedral anion [Sb2F11] into [SbF6] and the molecular adduct CH3CN · SbF5 according to: [M(CO)4][Sb2F11]2 + 7 CH3CN → [M(NCCH3)4][SbF6]2 · CH3CN + 2 CH3CN · SbF5 + 4 CO M = Pd, Pt The monosolvated [M(NCCH3)4][SbF6]2 · CH3CN are obtained as single crystals from solution and are structurally characterized by single crystal x-ray diffraction. Both salts are isostructural. The cations are square planar but the N–C–C-sceletial groups of the ligands depart slightly from linearity. The new acetonitrile complexes as well as [Au(NCCH3)2][SbF6] and the adduct CH3CN · SbF5 are completely characterized by vibrational spectroscopy.  相似文献   

17.
Direct conversion of methane with carbon dioxide to value‐added chemicals is attractive but extremely challenging because of the thermodynamic stability and kinetic inertness of both molecules. Herein, the first dinuclear cluster species, RhVO3?, has been designed to mediate the co‐conversion of CH4 and CO2 to oxygenated products, CH3OH and CH2O, in the temperature range of 393–600 K. The resulting cluster ions RhVO3CO? after CH3OH formation can further desorb the [CO] unit to regenerate the RhVO3? cluster, leading to the successful establishment of a catalytic cycle for methanol production from CH4 and CO2 (CH4+CO2→CH3OH+CO). The exceptional activity of Rh‐V dinuclear oxide cluster (RhVO3?) identified herein provides a new mechanism for co‐conversion of two very stable molecules CH4 and CO2.  相似文献   

18.
The reaction of cis-(CO)4Fe[Si(CH3)3]2 (I) with CH3OSi(CH3)3 and C6H5CH2-OSi(CH3)3 at 80°C affords good yields of [(CH3)3Si]2O and the deoxygenation products RSi(CH3)3 (R = CH3, C6H5CH2). These reactions are proposed to occur via (CO)4Fe(R)Si(CH3)3 intermediates. This is supported by the observed formation of cis-(CO)4Fe(CH3)Si(CH3)3 (II) during the more rapid reaction of I with (CH3)2O; subsequent (CH3)4Si elimination occurs. With (C6H5CH2)2O, I reacts at 80°C to yield C6H5CH2Si(CH3)3 and C6H5CH2OSi(CH3)3 as primary products. With C6H5CH2OCH3, I effects regioselective benzyl---oxygen bond cleavage.  相似文献   

19.
Novel trisubstituted ethylenes, ring-substituted butyl 2-cyano-3-phenyl-2-propenoates, RPhCH=C(CN)CO2C4H9 (where R is 2-C6H5CH2O, 3-C6H5CH2O, 4-C6H5CH2O, 4-CH3COO, 3-CH3CO, 4-CH3CO, 4-CH3CONH, 2-CN, 3-CN, 4-CN, 4-(CH3)2N, 4-(C2H5)2N) were prepared and copolymerized with styrene. The monomers were synthesized by the piperidine catalyzed Knoevenagel condensation of ring-substituted benzaldehydes and butyl cyanoacetate, and characterized by CHN analysis, IR, 1H and 13C-NMR. All the ethylenes were copolymerized with styrene (M1) in solution with radical initiation (ABCN) at 70°C. The compositions of the copolymers were calculated from nitrogen analysis and the structures were analyzed by IR, 1H and 13C-NMR. The order of relative reactivity (1/r1) for the monomers is 4-C6H5CH2O (6.39) > 2-C6H5CH2O (2.06) > 3-CH3CO (1.86) > 3-C6H5CH2O (1.78) > 4-CH3COO (1.58) > 3-CN (1.47) > 4-CN (1.21) > 4-(C2H5)2N (1.19) > 4-(CH3)2N (1.18) > 2-CN (1.04) > 4-CH3CO (0.71) > 4-CH3CONH (0.63). Decomposition of the copolymers in nitrogen occurred in two steps, first in the 200–500°C range with residue (3.6–9.5% wt), which then decomposed in the 500–800°C range.  相似文献   

20.
The reactions of Fe(CO)5 or Fe3(CO)12 with NaBEt3H or KB[CH(CH3)C2H5]3H, respectively and treatment of the resulting carbonylates M2Fe(CO)4, M = Na, K with elemental selenium in appropriate ratios lead to the formation of M2[Fe2(CO)6(μ‐Se)2]. Subsequent reactions with organo halides or the complex fragment cpFe(CO)2+, cp = η5‐C5H5 afforded the selenolato complexes [Fe2(CO)6(μ‐SeR)2], R = CH2SiMe3 ( 1 ), CH2Ph ( 2 ), p‐CH2C6H4NO2 ( 3 ), o‐CH2C6H4CH2 ( 4 ) and cpFe(CO)2+ ( 5 ) in moderate to good yields. A similar reaction employing Ru3(CO)12, Se and p‐O2NC6H4CH2Br leads to the formation of the corresponding organic diselenide. The X‐ray structures of 1 , 3 , 4 and 5 were determined and revealed butterfly structures of the Fe2Se2 cores. The substituents in 1 , 3  and 5 adopt different conformations depending on their steric demand. In 4 , the conformation is fixed because of the chelate effect of the ligand. The Fe–Se bond lengths lie in the range 235 to 240 pm, with corresponding Fe–Fe bond lengths of 254 to 256 pm. The 77Se NMR data of the new complexes are discussed and compared with the corresponding data of related complexes.  相似文献   

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